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I am currently setting up a website where I get a file uploaded from the user , do some processing on it and provide a link for the user to download the processed file from. I presently want to provide a path to the file on my local system, I am new to web2py, and am having trouble doing this.

Could someone please help me do this?

Regards

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you should describe what trouble : the error message, which step are you in now? are you finish the upload ? save it to some path on server? or you have problem on downloading the processed file? – pinkdawn Jul 2 '12 at 9:00
    
Thanks for the reply pinkdawn. Yes I have uploaded the file. it is in a certain folder on my system. I need to present a download link to this file in one of the views. – frodo Jul 2 '12 at 9:08

see this link for some hint: webpy: how to stream files , and may be add some code like this:

BUF_SIZE = 262144
class download:
    def GET(self):
        file_name = # get from url
        file_path = os.path.join('/path to your file', file_name)
        f = None
        try:
            f = open(file_path, "rb")
            webpy.header('Content-Type','application/octet-stream')
            webpy.header('Content-disposition', 'attachment; filename=%s' % file_name)
            while True:
                c = f.read(BUF_SIZE)
                if c:
                    yield c
                else:
                    break
        except Exception, e:
            # throw 403 or 500 or just leave it
            pass
        finally:
            if f:
                f.close()
share|improve this answer
    
Thanks. Am looking at it. – frodo Jul 2 '12 at 10:45
    
I believe he is asking about web2py, not web.py. – Anthony Jul 2 '12 at 15:16

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